library(testthat)
library(recipes)
# ------------------------------------------------------------------------------
iris_rec <- recipe(~., data = iris)
# ------------------------------------------------------------------------------
test_that("basic usage - skip = FALSE", {
rec <-
iris_rec %>%
step_filter(Sepal.Length > 4.5, Species == "setosa", skip = FALSE)
prepped <- prep(rec, training = iris %>% slice(1:75))
dplyr_train <-
iris %>%
as_tibble() %>%
slice(1:75) %>%
dplyr::filter(Sepal.Length > 4.5, Species == "setosa")
rec_train <- bake(prepped, new_data = NULL)
expect_equal(dplyr_train, rec_train)
dplyr_test <-
iris %>%
as_tibble() %>%
slice(76:150) %>%
dplyr::filter(Sepal.Length > 4.5, Species == "setosa")
dplyr_test <- dplyr_test[, names(rec_train)]
rec_test <- bake(prepped, iris %>% slice(76:150))
expect_equal(dplyr_test, rec_test)
})
test_that("skip = FALSE", {
rec <-
iris_rec %>%
step_filter(Sepal.Length > 4.5, Species == "setosa", skip = FALSE)
prepped <- prep(rec, training = iris %>% slice(1:75))
dplyr_train <-
iris %>%
as_tibble() %>%
slice(1:75) %>%
dplyr::filter(Sepal.Length > 4.5, Species == "setosa")
rec_train <- bake(prepped, new_data = NULL)
expect_equal(dplyr_train, rec_train)
dplyr_test <-
iris %>%
as_tibble() %>%
slice(76:150) %>%
dplyr::filter(Sepal.Length > 4.5, Species == "setosa")
rec_test <- bake(prepped, iris %>% slice(76:150))
expect_equal(dplyr_test, rec_test)
})
test_that("quasiquotation", {
values <- c("versicolor", "virginica")
rec_1 <-
iris_rec %>%
step_filter(Sepal.Length > 4.5, Species %in% values)
prepped_1 <- prep(rec_1, training = iris %>% slice(1:75))
dplyr_train <-
iris %>%
as_tibble() %>%
slice(1:75) %>%
filter(Sepal.Length > 4.5, Species %in% values)
rec_1_train <- bake(prepped_1, new_data = NULL)
expect_equal(dplyr_train, rec_1_train)
rec_2 <-
iris_rec %>%
step_filter(Sepal.Length > 4.5, Species %in% !!values)
prepped_2 <- prep(rec_2, training = iris %>% slice(1:75))
expect_no_error(
prepped_2 <- prep(rec_2, training = iris %>% slice(1:75))
)
rec_2_train <- bake(prepped_2, new_data = NULL)
expect_equal(dplyr_train, rec_2_train)
})
test_that("no input", {
no_inputs <-
iris_rec %>%
step_filter() %>%
prep(training = iris) %>%
bake(new_data = NULL, composition = "data.frame")
expect_equal(no_inputs, iris)
})
# Infrastructure ---------------------------------------------------------------
test_that("bake method errors when needed non-standard role columns are missing", {
# Here for completeness
# step_filter() is one of the thin wrappers around dplyr functions and
# is thus hard to check against
expect_true(TRUE)
})
test_that("empty printing", {
rec <- recipe(mpg ~ ., mtcars)
rec <- step_filter(rec)
expect_snapshot(rec)
rec <- prep(rec, mtcars)
expect_snapshot(rec)
})
test_that("empty selection prep/bake is a no-op", {
rec1 <- recipe(mpg ~ ., mtcars)
rec2 <- step_filter(rec1)
rec1 <- prep(rec1, mtcars)
rec2 <- prep(rec2, mtcars)
baked1 <- bake(rec1, mtcars)
baked2 <- bake(rec2, mtcars)
expect_identical(baked1, baked2)
})
test_that("empty selection tidy method works", {
rec <- recipe(mpg ~ ., mtcars)
rec <- step_filter(rec)
expect <- tibble(terms = character(), id = character())
expect_identical(tidy(rec, number = 1), expect)
rec <- prep(rec, mtcars)
expect_identical(tidy(rec, number = 1), expect)
})
test_that("printing", {
rec <- iris_rec %>%
step_filter(Sepal.Length > 4.5)
expect_snapshot(print(rec))
expect_snapshot(prep(rec))
})
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